Role of indistinguishability in interferometric phase estimation
Laura T. Knoll, Gustavo M. Bosyk, Ignacio H. L\'opez Grande, Miguel, A. Larotonda

TL;DR
This paper investigates how the indistinguishability of photons affects the precision of interferometric phase estimation, demonstrating both theoretically and experimentally that increased indistinguishability enhances quantum measurement accuracy.
Contribution
It provides a combined theoretical and experimental analysis showing that photon indistinguishability linearly improves quantum Fisher information in phase estimation.
Findings
Quantum Fisher information increases linearly with indistinguishability.
Experimental results confirm quantum enhancement even with noise.
Indistinguishability can be characterized by spatial mode overlap.
Abstract
We report a theoretical and experimental study on the role of indistinguishability in the estimation of an interferometric phase. In particular, we show that the quantum Fisher information, which limits the maximum precision achievable in the parameter estimation, increases linearly with respect to the degree of indistinguishability between the input photons in a two-port interferometer, in the ideal case of a pure probe state. We experimentally address the role played by the indistinguishability for the case of two photons entering a polarization-based interferometer, where the degree of indistinguishability is characterized by the overlap between two spatial modes. The experimental results support the fact that, even in the presence of white noise, a quantum enhancement in the interferometric phase estimation can be obtained from a minimum degree of indistinguishability.
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